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Updated: Aug 12, 2026

Tractable Mammalian Cell Infections with Protozoan-primed Bacteria
Published on: April 2, 2013
Autophagy is an immediate macrophage response to Legionella pneumophila
Amal O Amer1, Michele S Swanson
1Department of Microbiology and Immunology, University of Michigan Medical School, 6734 Medical Science Building II, 1150 West Medical Center Drive, Ann Arbor, MI 48109-0620, USA.
Abstract:
After ingestion by macrophages, Legionella pneumophila enter spacious vacuoles that are quickly enveloped by endoplasmic reticulum (ER), then slowly transferred to lysosomes. Here we demonstrate that the macrophage autophagy machinery recognizes the pathogen phagosome as cargo for lysosome delivery. The autophagy conjugation enzyme Atg7 immediately translocated to phagosomes harbouring virulent Legionella. Subsequently, Atg8, a second autophagy enzyme, and monodansyl-cadaverine (MDC), a dye that accumulates in acidic autophagosomes, decorated the pathogen vacuoles. The autophagy machinery responded to 10-30 kDa species released into culture supernatants by Type IV secretion-competent Legionella, as judged by the macrophages' processing of Atg8 and formation of vacuoles that sequentially acquired Atg7, Atg8 and MDC. When compared with autophagosomes stimulated by rapamycin, Legionella vacuoles acquired Atg7, Atg8 and MDC more slowly, and Atg8 processing was also delayed. Moreover, compared with autophagosomes of Legionella-permissive naip5 mutant A/J macrophages, those of resistant C57BL/6 J macrophages matured quickly, preventing efficient Legionella replication. Accordingly, we discuss a model in which macrophages elevate autophagy as a barrier to infection, a decision influenced by regulatory interactions between Naip proteins and caspases.
Insights
Macrophages utilize autophagy to target Legionella pneumophila, a bacterial pathogen. This process involves specific autophagy enzymes and is influenced by host genetics, impacting bacterial replication.
Area of Science:
- Cell Biology
- Immunology
- Microbiology
Background:
- Macrophages engulf Legionella pneumophila into vacuoles.
- These vacuoles are initially associated with the endoplasmic reticulum before lysosomal transfer.
Purpose of the Study:
- To investigate the role of macrophage autophagy in handling Legionella pneumophila.
- To elucidate the molecular mechanisms and host genetic factors involved in this process.
Main Methods:
- Tracking the recruitment of autophagy-related proteins (Atg7, Atg8) to Legionella-containing vacuoles.
- Utilizing monodansyl-cadaverine (MDC) staining to assess vacuole acidity and autophagosome formation.
- Comparing autophagy dynamics in different mouse macrophage strains (A/J vs. C57BL/6 J).
Main Results:
- The autophagy machinery, including Atg7 and Atg8, is recruited to Legionella vacuoles.
- Autophagy response is triggered by bacterial secretion products and shows delayed kinetics compared to canonical autophagosomes.
- Host resistance (C57BL/6 J) correlates with faster vacuole maturation and reduced bacterial replication compared to permissive macrophages (A/J).
Conclusions:
- Macrophages employ autophagy as a defense mechanism against Legionella pneumophila infection.
- Host genetic factors, specifically Naip proteins and caspases, modulate the autophagy response and bacterial control.
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